D'Sa Dexter J, Chan Hak-Kim, Chrzanowski Wojciech
The Faculty of Pharmacy, The University of Sydney, Pharmacy and Bank Building A15, Sydney, NSW 2006, Australia.
The Faculty of Pharmacy, The University of Sydney, Pharmacy and Bank Building A15, Sydney, NSW 2006, Australia.
J Colloid Interface Sci. 2014 Jul 15;426:190-8. doi: 10.1016/j.jcis.2014.04.005. Epub 2014 Apr 13.
Current colloidal probe preparation techniques face several challenges in the production of functional probes using particles ⩽5 μm. Challenges include: glue encapsulated particles, glue altered particle properties, improper particle or agglomerate attachment, and lengthy procedures. We present a method to rapidly and reproducibly produce functional micro and nano-colloidal probes.
Using a six-step procedure, cantilevers mounted on a custom designed 45° holder were used to approach and obtain a minimal amount of epoxy resin (viscosity of ∼14,000 cP) followed by a single micron/nano particle on the apex of a tipless cantilever. The epoxy and particles were prepared on individual glass slides and subsequently affixed to a 10× or 40× optical microscope lens using another custom designed holder. Scanning electron microscopy and comparative glue-colloidal probe measurements were used to confirm colloidal probe functionality.
The method presented allowed rapid and reproducible production of functional colloidal probes (80% success). Single nano-particles were prominently affixed to the apex of the cantilever, unaffected by the epoxy. Nano-colloidal probes were used to conduct topographical, instantaneous force, and adhesive force mapping measurements in dry and liquid media conveying their versatility and functionality in studying nano-colloidal systems.
目前的胶体探针制备技术在使用小于等于5μm的颗粒生产功能性探针时面临若干挑战。这些挑战包括:胶水包裹的颗粒、胶水改变颗粒性质、颗粒或团聚体附着不当以及程序冗长。我们提出了一种快速且可重复地生产功能性微米和纳米胶体探针的方法。
采用六步程序,将安装在定制设计的45°支架上的悬臂用于接近并获取极少量环氧树脂(粘度约为14,000厘泊),随后在无尖悬臂的顶端放置单个微米/纳米颗粒。环氧树脂和颗粒在单独的载玻片上制备,随后使用另一个定制设计的支架固定到10×或40×光学显微镜镜头上。使用扫描电子显微镜和比较胶水 - 胶体探针测量来确认胶体探针的功能。
所提出的方法能够快速且可重复地生产功能性胶体探针(成功率80%)。单个纳米颗粒显著地附着在悬臂的顶端,不受环氧树脂的影响。纳米胶体探针用于在干燥和液体介质中进行形貌、瞬时力和粘附力映射测量,展现了它们在研究纳米胶体系统中的多功能性和功能性。